4.8 Article

Scale-invariant magnetic anisotropy in RuCl3at high magnetic fields

期刊

NATURE PHYSICS
卷 17, 期 2, 页码 240-+

出版社

NATURE RESEARCH
DOI: 10.1038/s41567-020-1028-0

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资金

  1. National Science Foundation [DMR-1157490, DMR-1644779, DMR-1332208]
  2. US Department of Energy
  3. State of Florida
  4. LANL LDRD-DR [20160085]
  5. Institute for Quantum Matter, an Energy Frontier Research Center - US Department of Energy, Office of Science, Office of Basic Energy Sciences [DE-SC0019331]
  6. US Department of Energy through the LANL/LDRD programme
  7. G.T. Seaborg institute
  8. Gabilan Stanford Graduate Fellowship
  9. NSF Graduate Research Fellowship [DGE-114747]
  10. Swiss National Science Foundation [PP00P2-176789]
  11. Swiss National Science Foundation (SNF) [PP00P2_176789] Funding Source: Swiss National Science Foundation (SNF)

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The study reveals scale-invariant magnetic anisotropy in RuCl3, providing evidence for a high degree of exchange frustration favoring the formation of a spin liquid state. Magnetic field and temperature compete to determine the magnetic response independently of the large intrinsic exchange-interaction energy.
Scale-invariant magnetic anisotropy in RuCl(3)has been revealed through measurements of its magnetotropic coefficient, providing evidence for a high degree of exchange frustration that favours the formation of a spin liquid state. In RuCl3, inelastic neutron scattering and Raman spectroscopy reveal a continuum of non-spin-wave excitations that persists to high temperature, suggesting the presence of a spin liquid state on a honeycomb lattice. In the context of the Kitaev model, finite magnetic fields introduce interactions between the elementary excitations, and thus the effects of high magnetic fields that are comparable to the spin-exchange energy scale must be explored. Here, we report measurements of the magnetotropic coefficient-the thermodynamic coefficient associated with magnetic anisotropy-over a wide range of magnetic fields and temperatures. We find that magnetic field and temperature compete to determine the magnetic response in a way that is independent of the large intrinsic exchange-interaction energy. This emergent scale-invariant magnetic anisotropy provides evidence for a high degree of exchange frustration that favours the formation of a spin liquid state in RuCl3.

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